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The effect of humidity on the CO_2/N_2 separation performance of copolymers based on hard polyimide segments and soft polyether chains:Experimental and modeling
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作者 Luca Olivieri Alberto Tena +3 位作者 Maria Grazia De Angelis Antonio Hernández Giménez Angel E.Lozano Giulio Cesare Sarti 《Green Energy & Environment》 SCIE 2016年第3期201-210,共10页
In this work, we studied two copolymers formed by segments of a rubbery polyether(PPO or PEO) and of a glassy polyimide(BPDA-ODA or BKDA-ODA) suitable for gas separation and CO2 capture. Firstly, we assessed the a... In this work, we studied two copolymers formed by segments of a rubbery polyether(PPO or PEO) and of a glassy polyimide(BPDA-ODA or BKDA-ODA) suitable for gas separation and CO2 capture. Firstly, we assessed the absorption of water vapor in the materials, as a function of relative humidity(R.H.), finding that the humidity uptake of the copolymers lies between that of the corresponding pure homopolymers values.Furthermore, we studied the effect of humidity on CO2 and N2 permeability, as well as on CO2/N2 selectivity, up to R.H. of 75%. The permeability decreases with increasing humidity, while the ideal selectivity remains approximately constant in the entire range of water activity investigated. The humidity-induced decrease of permeability in the copolymers is much smaller than the one observed in polyimides such as Matrimid? confirming the positive effect of the polyether phase on the membrane performance.Finally, we modeled the humidity-induced decrease of gas solubility, diffusivity and, consequently, permeability, using a suitable approach that considers the free volume theory for diffusion and LF model for solubility. Such model allows estimating the extent of competition that the gases undergo with water during sorption in the membranes, as a function of the relative humidity, as well as the expected reduction of free volume by means of water molecules occupation and consequent reduction of diffusivity. 展开更多
关键词 CO2 capture Humid gas permeation Transport properties in polymeric membranes Water vapor sorption Modeling
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“绿电”制“绿氢”
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作者 Katrin Ehrenleitner 《流程工业》 2022年第6期16-17,共2页
本文介绍了绿色电能(可再生能源)是如何制造绿色氢能的——由绿色电能(包括水力发电、风力发电、太阳能、生物能、地热能以及海潮能等)驱动的紧凑型电解系统,以分布式的方式储存绿色电能能源,将之用于各种应用。但仅仅建立一个紧凑型电... 本文介绍了绿色电能(可再生能源)是如何制造绿色氢能的——由绿色电能(包括水力发电、风力发电、太阳能、生物能、地热能以及海潮能等)驱动的紧凑型电解系统,以分布式的方式储存绿色电能能源,将之用于各种应用。但仅仅建立一个紧凑型电解槽系统是不够的:如果想要实现分布式制氢,传统的电化学制氢的方法则需要在有限的空间内,与可再生电能(绿电)进行适当的集成和连接。能源转换是任何一个工厂规划皆不可规避的问题。 展开更多
关键词 可再生能源 能源转换 生物能 绿电 风力发电 地热能 电解系统 工厂规划
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